Selectivity limits of and opportunities for ion pair chromatographic separation of oligonucleotides

被引:30
作者
Enmark, Martin [1 ]
Harun, Said [2 ]
Samuelsson, Jorgen [1 ]
Ornskov, Eivor [2 ]
Thunberg, Linda [3 ]
Dahlen, Anders [4 ]
Fornstedt, Torgny [1 ]
机构
[1] Karlstad Univ, Dept Engn & Chem Sci, SE-65188 Karlstad, Sweden
[2] AstraZeneca, BioPharmaceut R&D, Pharmaceut Sci, Adv Drug Delivery, S-43183 Molndal, Sweden
[3] AstraZeneca, BioPharmaceut R&D, Pharmaceut Sci, Early Chem Dev, S-43183 Molndal, Sweden
[4] AstraZeneca, BioPharmaceut R&D, Discovery Sci, Oligonucleotide Discovery, S-43183 Molndal, Sweden
基金
瑞典研究理事会;
关键词
Oligonucleotides; Ion pair chromatography; Selectivity; Electrostatic potential; LIQUID-CHROMATOGRAPHY; ADSORPTION-ISOTHERM; STATIONARY PHASES; RETENTION; PERFORMANCE; MODEL; ACIDS; THERAPEUTICS; MECHANISM; DNA;
D O I
10.1016/j.chroma.2021.462269
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
A B S T R A C T Here it was investigated how oligonucleotide retention and selectivity factors are affected by electrostatic and non-electrostatic interactions in ion pair chromatography. A framework was derived describing how selectivity depends on the electrostatic potential generated by the ion-pair reagent concentration, co-solvent volume fraction, charge difference between the analytes, and temperature. Isocratic experiments verified that, in separation problems concerning oligonucleotides of different charges, selectivity increases with increasing surface potential and analyte charge difference and with decreasing co-solvent volume fraction and temperature. For analytes of the same charge, for example, diastereomers of phosphorothioated oligonucleotides, selectivity can be increased by decreasing the co-solvent volume fraction or the temperature and has only a minor dependency on the ion-pairing reagent concentration. An important observation is that oligonucleotide retention is driven predominantly by electrostatic interaction generated by the adsorption of the ion-pairing reagent. We therefore compared classical gradient elution in which the co-solvent volume fraction increases over time versus gradient elution with a constant co-solvent volume fraction but with decreasing ion-pair reagent concentration over time. Both modes decrease the electrostatic potential. Oligonucleotide selectivity was found to increase with decreasing ion pairing reagent concentration. The two elution modes were finally applied to two different model anti sense oligonucleotide separation problems, and it was shown that the ion-pair reagent gradient increases the selectivity of non-charge-based separation problems while maintaining charge-difference-based selectivity. (c) 2021 The Author(s). Published by Elsevier B.V. This is an open access article under the CC BY license ( http://creativecommons.org/licenses/by/4.0/ )
引用
收藏
页数:12
相关论文
共 46 条
[1]   The acidity constants of some pyrimidine bases in various water-organic solvent media [J].
Ahmed, IT ;
Soliman, ES ;
Boraei, AAA .
ANNALI DI CHIMICA, 2004, 94 (11) :847-856
[2]   ELECTROSTATIC RETENTION MODEL OF REVERSED-PHASE ION-PAIR CHROMATOGRAPHY [J].
BARTHA, A ;
STAHLBERG, J .
JOURNAL OF CHROMATOGRAPHY A, 1994, 668 (02) :255-284
[3]   Loop-mediated isothermal amplification (LAMP) - review and classification of methods for sequence-specific detection [J].
Becherer, Lisa ;
Borst, Nadine ;
Bakheit, Mohammed ;
Frischmann, Sieghard ;
Zengerle, Roland ;
von Stetten, Felix .
ANALYTICAL METHODS, 2020, 12 (06) :717-746
[4]   Bioconjugated Oligonucleotides: Recent Developments and Therapeutic Applications [J].
Benizri, Sebastien ;
Gissot, Arnaud ;
Martin, Andrew ;
Vialet, Brune ;
Grinstaff, Mark W. ;
Barthelemy, Philippe .
BIOCONJUGATE CHEMISTRY, 2019, 30 (02) :366-383
[5]   RNA Targeting Therapeutics: Molecular Mechanisms of Antisense Oligonucleotides as a Therapeutic Platform [J].
Bennett, C. Frank ;
Swayze, Eric E. .
ANNUAL REVIEW OF PHARMACOLOGY AND TOXICOLOGY, 2010, 50 :259-293
[6]   Zeta potential determination as a new way of stationary phases characterization for liquid chromatography [J].
Buszewski, Boguslaw ;
Bocian, Szymon ;
Dziubakiewicz, Ewelina .
JOURNAL OF SEPARATION SCIENCE, 2010, 33 (11) :1529-1537
[7]   Impurities in Oligonucleotide Drug Substances and Drug Products [J].
Capaldi, Daniel ;
Teasdale, Andy ;
Henry, Scott ;
Akhtar, Nadim ;
den Besten, Cathaline ;
Gao-Sheridan, Samantha ;
Kretschmer, Matthias ;
Sharpe, Neal ;
Andrews, Ben ;
Burm, Brigitte ;
Foy, Jeffrey .
NUCLEIC ACID THERAPEUTICS, 2017, 27 (06) :309-322
[8]   Oligonucleotides: Current Trends and Innovative Applications in the Synthesis, Characterization, and Purification [J].
Catani, Martina ;
De Luca, Chiara ;
Medeiros Garcia Alcantara, Joao ;
Manfredini, Nicolo ;
Perrone, Daniela ;
Marchesi, Elena ;
Weldon, Richard ;
Mueller-Spaeth, Thomas ;
Cavazzini, Alberto ;
Morbidelli, Massimo ;
Sponchioni, Mattia .
BIOTECHNOLOGY JOURNAL, 2020, 15 (08)
[9]   Extended thermodynamic approach to ion interaction chromatography [J].
Cecchi, T ;
Pucciarelli, F ;
Passamonti, P .
ANALYTICAL CHEMISTRY, 2001, 73 (11) :2632-2639
[10]  
Cecchi T, 2010, ANAL CHEM SER, P1